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Nanoarchitectonics with cetrimonium bromide on metal nanoparticles for linker-free detection of toxic metal ions and catalytic degradation of 4-nitrophenol

机译:在金属纳米颗粒上使用西曲溴铵的纳米结构学用于无接头检测有毒金属离子和 4-硝基苯酚的催化降解

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摘要

Heavy metal ions and organic pollutants, such as 4-nitrophenol (4-NP), pose significant environmental and human health threats. Addressing these challenges necessitates using advanced nanoparticle-based systems capable of efficient detection and degradation. However, conventional approaches utilizing strong capping agents like cetrimonium bromide (CTAB) on nanoparticles lead to limitations due to the rigid nature of CTAB. This restricts its utility in heavy metal detection and 4-NP degradation, requiring additional surface modifications using linker molecules, thereby increasing process complexity and cost. To overcome these limitations, there is a critical need for the development of an easy-to-use, dual-functional, linker-free nanosystem capable of simultaneous detection of heavy metals and efficient degradation of 4-NP. For enabling linker-free/ligand-free detection of heavy metal ions and catalytic degradation of 4-NP, CTAB was engineered as a versatile capping agent on gold and silver nanoparticles. Various factors, including nanoparticle characteristics such as shape, size, metal composition, centrifugation, and NaOH amount, were investigated for their impact on the performance of CTAB-capped nanoparticles in heavy metal detection and 4-NP degradation. CTAB-Au nanospheres demonstrated limited heavy metal ion detection capability but exhibited remarkable efficiency in degrading 94.37% of 4-NP within 1 min. In contrast, silver nanospheres effectively detected Hg2+, Cu2+, and Fe3+ at concentrations as low as 1 ppm and degraded 90.78% of 4-NP within 30 min. Moreover, anisotropic gold nanorods (CTAB-AuNR1 and CTAB-AuNR2) showed promising sensing capabilities towards Cu2+, Cr3+, and Hg2+ at 0.5 OD, while efficiently degrading 4-NP within 5 min at 1 OD. This study emphasizes the importance of tailoring parameters of CTAB-capped nanoparticles for specific sensing and catalytic applications, offering potential solutions for environmental remediation and human health protection.
机译:重金属离子和有机污染物,如 4-硝基苯酚 (4-NP),对环境和人类健康构成重大威胁。应对这些挑战需要使用能够有效检测和降解的基于纳米颗粒的先进系统。然而,由于 CTAB 的刚性,在纳米颗粒上使用西曲溴铵 (CTAB) 等强封端剂的传统方法会导致限制。这限制了其在重金属检测和 4-NP 降解中的应用,需要使用接头分子进行额外的表面修饰,从而增加了工艺复杂性和成本。为了克服这些限制,迫切需要开发一种易于使用、双功能、无接头的纳米系统,该系统能够同时检测重金属并有效降解 4-NP。为了实现重金属离子的无接头/无配体检测和 4-NP 的催化降解,CTAB 被设计为金和银纳米颗粒的多功能封端剂。研究了各种因素,包括纳米颗粒特性,如形状、大小、金属成分、离心和 NaOH 量,以了解它们对 CTAB 封端纳米颗粒在重金属检测和 4-NP 降解中性能的影响。CTAB-Au 纳米球表现出有限的重金属离子检测能力,但在 1 分钟内降解 94.37% 的 4-NP 表现出显着的效率。相比之下,银纳米球有效检测浓度低至 1 ppm 的 Hg2+、Cu2+ 和 Fe3+,并在 30 分钟内降解了 90.78% 的 4-NP。此外,各向异性金纳米棒 (CTAB-AuNR1 和 CTAB-AuNR2) 在 0.5 OD 时对 Cu2+、Cr3+ 和 Hg2+ 显示出良好的传感能力,同时在 1 OD 下在 5 分钟内有效降解 4-NP。本研究强调了为特定传感和催化应用定制 CTAB 封端纳米颗粒参数的重要性,为环境修复和人类健康保护提供了潜在的解决方案。

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